Patents by Inventor Peter Sturdza

Peter Sturdza has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Patent number: 10634581
    Abstract: In accordance with embodiments disclosed herein, there are provided methods, systems, and apparatuses for predicting whether a point on a computer-generated aircraft or vehicle surface is adjacent to laminar or turbulent flow is made using a transition prediction technique. A plurality of boundary-layer properties at the point are obtained from a steady-state solution of a fluid flow in a region adjacent to the point. Included in the list of boundary-layer properties are computed coefficients or weights of mode shapes that describe the boundary-layer profiles. A plurality of instability modes are obtained, each defined by one or more mode parameters. A vector of regressor weights is obtained for the known instability growth rates in a training dataset. For each instability mode in the plurality of instability modes, a covariance vector is determined, which is the covariance of a predicted local growth rate with the known instability growth rates.
    Type: Grant
    Filed: October 26, 2016
    Date of Patent: April 28, 2020
    Assignee: AERION INTELLECTUAL PROPERTY MANAGEMENT CORPORATION
    Inventors: Dev Rajnarayan, Peter Sturdza
  • Patent number: 10296672
    Abstract: Fluid-flow simulation over a computer-generated aircraft surface is generated using inviscid and viscous simulations. A fluid-flow mesh of fluid cells is obtained. At least one inviscid fluid property for the fluid cells is determined using an inviscid fluid simulation that does not simulate fluid viscous effects. A set of intersecting fluid cells that intersects the aircraft surface are identified. One surface mesh polygon of the surface mesh is identified for each intersecting fluid cell. A boundary-layer prediction point for each identified surface mesh polygon is determined. At least one boundary-layer fluid property for each boundary-layer prediction point is determined using the at least one inviscid fluid property of the corresponding intersecting fluid cell and a boundary-layer simulation that simulates fluid viscous effects. At least one updated fluid property for at least one fluid cell is determined using the at least one boundary-layer fluid property and the inviscid fluid simulation.
    Type: Grant
    Filed: December 24, 2014
    Date of Patent: May 21, 2019
    Inventors: David L. Rodriguez, Peter Sturdza
  • Publication number: 20170045417
    Abstract: In accordance with embodiments disclosed herein, there are provided methods, systems, and apparatuses for predicting whether a point on a computer-generated aircraft or vehicle surface is adjacent to laminar or turbulent flow is made using a transition prediction technique. A plurality of boundary-layer properties at the point are obtained from a steady-state solution of a fluid flow in a region adjacent to the point. Included in the list of boundary-layer properties are computed coefficients or weights of mode shapes that describe the boundary-layer profiles. A plurality of instability modes are obtained, each defined by one or more mode parameters. A vector of regressor weights is obtained for the known instability growth rates in a training dataset. For each instability mode in the plurality of instability modes, a covariance vector is determined, which is the covariance of a predicted local growth rate with the known instability growth rates.
    Type: Application
    Filed: October 26, 2016
    Publication date: February 16, 2017
    Applicant: Aerion Corporation
    Inventors: Dev Rajnarayan, Peter Sturdza
  • Patent number: 9494482
    Abstract: In accordance with embodiments disclosed herein, there are provided methods, systems, and apparatuses for predicting whether a point on a computer-generated aircraft or vehicle surface is adjacent to laminar or turbulent flow is made using a transition prediction technique. A plurality of boundary-layer properties at the point are obtained from a steady-state solution of a fluid flow in a region adjacent to the point. Included in the list of boundary-layer properties are computed coefficients or weights of mode shapes that describe the boundary-layer profiles. A plurality of instability modes are obtained, each defined by one or more mode parameters. A vector of regressor weights is obtained for the known instability growth rates in a training dataset. For each instability mode in the plurality of instability modes, a covariance vector is determined, which is the covariance of a predicted local growth rate with the known instability growth rates.
    Type: Grant
    Filed: March 26, 2013
    Date of Patent: November 15, 2016
    Assignee: Aerion Corporation
    Inventors: Dev Rajnarayan, Peter Sturdza
  • Patent number: 9418202
    Abstract: A prediction of whether a point on a computer-generated surface is adjacent to laminar or turbulent flow is made using a transition prediction technique. A plurality of instability modes are obtained, each defined by one or more mode parameters. A vector of regressor weights is obtained for the known instability growth rates in a training dataset. For an instability mode in the plurality of instability modes, a covariance vector is determined. A predicted local instability growth rate at the point is determined using the covariance vector and the vector of regressor weights. Based on the predicted local instability growth rate, an n-factor envelope at the point is determined.
    Type: Grant
    Filed: September 5, 2013
    Date of Patent: August 16, 2016
    Assignee: Aerion Technologies Corporation
    Inventors: Dev Rajnarayan, Peter Sturdza
  • Patent number: 9348956
    Abstract: A fluid-flow simulation over a computer-generated surface is generated using a diffusion technique. The surface is comprised of a surface mesh of polygons. A boundary-layer fluid property is obtained for a subset of the polygons of the surface mesh. A gradient vector is determined for a selected polygon, the selected polygon belonging to the surface mesh but not one of the subset of polygons. A maximum and minimum diffusion rate is determined along directions determined using the gradient vector corresponding to the selected polygon. A diffusion-path vector is defined between a point in the selected polygon and a neighboring point in a neighboring polygon. An updated fluid property is determined for the selected polygon using a variable diffusion rate, the variable diffusion rate based on the minimum diffusion rate, maximum diffusion rate, and the gradient vector.
    Type: Grant
    Filed: May 3, 2013
    Date of Patent: May 24, 2016
    Assignee: AERION CORPORATION
    Inventors: David L. Rodriguez, Peter Sturdza
  • Publication number: 20150370933
    Abstract: Fluid-flow simulation over a computer-generated aircraft surface is generated using inviscid and viscous simulations. A fluid-flow mesh of fluid cells is obtained. At least one inviscid fluid property for the fluid cells is determined using an inviscid fluid simulation that does not simulate fluid viscous effects. A set of intersecting fluid cells that intersects the aircraft surface are identified. One surface mesh polygon of the surface mesh is identified for each intersecting fluid cell. A boundary-layer prediction point for each identified surface mesh polygon is determined. At least one boundary-layer fluid property for each boundary-layer prediction point is determined using the at least one inviscid fluid property of the corresponding intersecting fluid cell and a boundary-layer simulation that simulates fluid viscous effects. At least one updated fluid property for at least one fluid cell is determined using the at least one boundary-layer fluid property and the inviscid fluid simulation.
    Type: Application
    Filed: December 24, 2014
    Publication date: December 24, 2015
    Inventors: David L. RODRIGUEZ, Peter STURDZA
  • Patent number: 8935140
    Abstract: Fluid-flow simulation over a computer-generated surface is generated using inviscid and viscous simulations. A fluid-flow mesh of fluid cells is obtained. At least one inviscid fluid property for the fluid cells is determined using an inviscid fluid simulation that does not simulate fluid viscous effects. A set of intersecting fluid cells that intersects the surface are identified. A surface mesh polygon of the surface mesh is identified for each intersecting fluid cell. At least one boundary-layer fluid property for each identified surface mesh polygon is determined using the at least one inviscid fluid property of the corresponding intersecting fluid cell and a boundary-layer simulation that simulates fluid viscous effects.
    Type: Grant
    Filed: May 3, 2013
    Date of Patent: January 13, 2015
    Assignee: Aerion Corporation
    Inventors: David L. Rodriguez, Peter Sturdza
  • Patent number: 8892408
    Abstract: A fluid-flow simulation over a computer-generated surface is generated using a quasi-simultaneous technique. The simulation includes a fluid-flow mesh of inviscid and boundary-layer fluid cells. An initial fluid property for an inviscid fluid cell is determined using an inviscid fluid simulation that does not simulate fluid viscous effects. An initial boundary-layer fluid property a boundary-layer fluid cell is determined using the initial fluid property and a viscous fluid simulation that simulates fluid viscous effects. An updated boundary-layer fluid property is determined for the boundary-layer fluid cell using the initial fluid property, initial boundary-layer fluid property, and an interaction law. The interaction law approximates the inviscid fluid simulation using a matrix of aerodynamic influence coefficients computed using a two-dimensional surface panel technique and a fluid-property vector.
    Type: Grant
    Filed: March 23, 2011
    Date of Patent: November 18, 2014
    Assignee: Aerion Corporation
    Inventors: Peter Sturdza, Herve Martins-Rivas, Yoshifumi Suzuki
  • Publication number: 20140019105
    Abstract: A prediction of whether a point on a computer-generated surface is adjacent to laminar or turbulent flow is made using a transition prediction technique. A plurality of instability modes are obtained, each defined by one or more mode parameters. A vector of regressor weights is obtained for the known instability growth rates in a training dataset. For an instability mode in the plurality of instability modes, a covariance vector is determined. A predicted local instabilty growth rate at the point is determined using the covariance vector and the vector of regressor weights. Based on the predicted local instability growth rate, an n-factor envelope at the point is determined.
    Type: Application
    Filed: September 5, 2013
    Publication date: January 16, 2014
    Applicant: AERION CORPORATION
    Inventors: Dev RAJNARAYAN, Peter STURDZA
  • Publication number: 20130282629
    Abstract: In accordance with embodiments disclosed herein, there are provided methods, systems, and apparatuses for predicting whether a point on a computer-generated aircraft or vehicle surface is adjacent to laminar or turbulent flow is made using a transition prediction technique. A plurality of boundary-layer properties at the point are obtained from a steady-state solution of a fluid flow in a region adjacent to the point. Included in the list of boundary-layer properties are computed coefficients or weights of mode shapes that describe the boundary-layer profiles. A plurality of instability modes are obtained, each defined by one or more mode parameters. A vector of regressor weights is obtained for the known instability growth rates in a training dataset. For each instability mode in the plurality of instability modes, a covariance vector is determined, which is the covariance of a predicted local growth rate with the known instability growth rates.
    Type: Application
    Filed: March 26, 2013
    Publication date: October 24, 2013
    Applicant: AERION CORPORATION
    Inventors: Dev Rajnarayan, Peter Sturdza
  • Publication number: 20130246024
    Abstract: A fluid-flow simulation over a computer-generated surface is generated using a diffusion technique. The surface is comprised of a surface mesh of polygons. A boundary-layer fluid property is obtained for a subset of the polygons of the surface mesh. A gradient vector is determined for a selected polygon, the selected polygon belonging to the surface mesh but not one of the subset of polygons. A maximum and minimum diffusion rate is determined along directions determined using the gradient vector corresponding to the selected polygon. A diffusion-path vector is defined between a point in the selected polygon and a neighboring point in a neighboring polygon. An updated fluid property is determined for the selected polygon using a variable diffusion rate, the variable diffusion rate based on the minimum diffusion rate, maximum diffusion rate, and the gradient vector.
    Type: Application
    Filed: May 3, 2013
    Publication date: September 19, 2013
    Applicant: AERION CORPORATION
    Inventors: David L. RODRIGUEZ, Peter STURDZA
  • Publication number: 20130246027
    Abstract: Fluid-flow simulation over a computer-generated surface is generated using inviscid and viscous simulations. A fluid-flow mesh of fluid cells is obtained. At least one inviscid fluid property for the fluid cells is determined using an inviscid fluid simulation that does not simulate fluid viscous effects. A set of intersecting fluid cells that intersects the surface are identified. A surface mesh polygon of the surface mesh is identified for each intersecting fluid cell. At least one boundary-layer fluid property for each identified surface mesh polygon is determined using the at least one inviscid fluid property of the corresponding intersecting fluid cell and a boundary-layer simulation that simulates fluid viscous effects.
    Type: Application
    Filed: May 3, 2013
    Publication date: September 19, 2013
    Applicant: AERION CORPORATION
    Inventors: David L. RODRIGUEZ, Peter STURDZA
  • Patent number: 8538738
    Abstract: A prediction of whether a point on a computer-generated surface is adjacent to laminar or turbulent flow is made using a transition prediction technique. A plurality of boundary-layer properties at the point are obtained from a steady-state solution of a fluid flow in a region adjacent to the point. A plurality of instability modes are obtained, each defined by one or more mode parameters. A vector of regressor weights is obtained for the known instability growth rates in a training dataset. For each instability mode in the plurality of instability modes, a covariance vector is determined, which is the covariance of a predicted local growth rate with the known instability growth rates. Each covariance vector is used with the vector of regressor weights to determine a predicted local growth rate at the point. Based on the predicted local growth rates, an n-factor envelope at the point is determined.
    Type: Grant
    Filed: March 22, 2011
    Date of Patent: September 17, 2013
    Assignee: Aerion Corporation
    Inventors: Dev Rajnarayan, Peter Sturdza
  • Patent number: D950465
    Type: Grant
    Filed: March 27, 2020
    Date of Patent: May 3, 2022
    Inventors: Peter Sturdza, Spencer Fugal, Alex Haas
  • Patent number: D950466
    Type: Grant
    Filed: March 27, 2020
    Date of Patent: May 3, 2022
    Inventors: Peter Sturdza, Spencer Fugal, Alex Haas
  • Patent number: D950467
    Type: Grant
    Filed: March 27, 2020
    Date of Patent: May 3, 2022
    Inventors: Peter Sturdza, Spencer Fugal, Alex Haas
  • Patent number: D950468
    Type: Grant
    Filed: March 27, 2020
    Date of Patent: May 3, 2022
    Inventors: Peter Sturdza, Spencer Fugal, Alex Haas
  • Patent number: D950469
    Type: Grant
    Filed: March 27, 2020
    Date of Patent: May 3, 2022
    Inventors: Peter Sturdza, Spencer Fugal, Alex Haas
  • Patent number: D950470
    Type: Grant
    Filed: March 27, 2020
    Date of Patent: May 3, 2022
    Inventors: Peter Sturdza, Spencer Fugal, Alex Haas